DocumentCode
10842
Title
Electromagnetic Focusing and Imaging in Stratified Media Using Gradient Phase Profiled Conjugating Lens
Author
Malyuskin, Oleksandr ; Fusco, Vincent
Author_Institution
Inst. of Electron., Commun. & Inf. Technol., Queen´s Univ. Belfast, Belfast, UK
Volume
62
Issue
12
fYear
2014
fDate
Dec. 2014
Firstpage
6246
Lastpage
6255
Abstract
High-resolution imaging of a dipole source in stratified medium based on negative refraction is presented in this paper. Compensation of the material parameter contrast at the stratified media interface is achieved using a gradient phase profiled conjugating lens (GPCL). It is shown both analytically and numerically that the phase gradient applied across the GPCL positioned at the interface of vertically stratified media enables a high-quality image of a dipole source in a mirror symmetric position with respect to the lens plane. The analytical closed form expression of the phase gradient function is derived using Huygens-Kirchhoff principle. The result is applicable to media with arbitrary stratification and material parameters, including lossy materials. The mechanism for formation of the dipole image in the stratified medium and aberration due to the dielectric contrast at the interface, particularly electromagnetic loss, is discussed in detail. The efficacy of gradient phase and amplitude aberration compensations mechanisms available through the GPCL is articulated. The results of the study are of importance in a wide range of imaging problems in stratified media for medical, civil, and military applications.
Keywords
aberrations; electromagnetic wave refraction; image resolution; inhomogeneous media; lenses; mirrors; Huygens-Kirchhoff principle; amplitude aberration compensation mechanism; civil applications; dielectric contrast; dipole image; dipole source; electromagnetic focusing; electromagnetic imaging; electromagnetic loss; gradient phase profiled conjugating lens; high-quality image; high-resolution imaging; lens plane; lossy materials; material parameter contrast compensation; medical applications; military applications; mirror symmetric position; negative refraction; phase gradient function; stratified media interface; vertically stratified media; Apertures; Dielectrics; Dipole antennas; Imaging; Media; Permittivity; Microwave imaging; focusing; negative refraction; phase conjugation; stratified media;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.2014.2365034
Filename
6936310
Link To Document